Structural Biology Laboratory, London Research Institute, Cancer Research UK, London WC2A 3LY, UK.
Nucleic Acids Res. 2012 Jul;40(13):e101. doi: 10.1093/nar/gks284. Epub 2012 Mar 28.
The structure-specific endonuclease activity of the human XPF-ERCC1 complex is essential for a number of DNA processing mechanisms that help to maintain genomic integrity. XPF-ERCC1 cleaves DNA structures such as stem-loops, bubbles or flaps in one strand of a duplex where there is at least one downstream single strand. Here, we define the minimal substrate requirements for cleavage of stem-loop substrates allowing us to develop a real-time fluorescence-based assay to measure endonuclease activity. Using this assay, we show that changes in the sequence of the duplex upstream of the incision site results in up to 100-fold variation in cleavage rate of a stem-loop substrate by XPF-ERCC1. XPF-ERCC1 has a preference for cleaving the phosphodiester bond positioned on the 3'-side of a T or a U, which is flanked by an upstream T or U suggesting that a T/U pocket may exist within the catalytic domain. In addition to an endonuclease domain and tandem helix-hairpin-helix domains, XPF has a divergent and inactive DEAH helicase-like domain (HLD). We show that deletion of HLD eliminates endonuclease activity and demonstrate that purified recombinant XPF-HLD shows a preference for binding stem-loop structures over single strand or duplex alone, suggesting a role for the HLD in initial structure recognition. Together our data describe features of XPF-ERCC1 and an accepted model substrate that are important for recognition and efficient incision activity.
人 XPF-ERCC1 复合物的结构特异性内切酶活性对于多种 DNA 加工机制至关重要,这些机制有助于维持基因组完整性。XPF-ERCC1 切割 DNA 结构,例如双链体中单链上的发夹环、泡或瓣,其中至少有一条下游单链。在这里,我们定义了切割发夹环底物的最小底物要求,使我们能够开发一种实时荧光测定法来测量内切酶活性。使用该测定法,我们表明,切口位点上游的双链体序列的变化导致 XPF-ERCC1 对发夹环底物的切割速率变化高达 100 倍。XPF-ERCC1 优先切割位于 T 或 U 磷酸二酯键的 3'-侧,该键被上游 T 或 U 侧翼,这表明催化结构域中可能存在 T/U 口袋。除了内切酶结构域和串联螺旋-发夹-螺旋结构域外,XPF 还具有发散且无活性的 DEAH 解旋酶样结构域 (HLD)。我们表明,HLD 的缺失消除了内切酶活性,并证明纯化的重组 XPF-HLD 显示出对发夹环结构的优先结合,而不是单独的单链或双链,这表明 HLD 在初始结构识别中起作用。我们的数据共同描述了 XPF-ERCC1 的特征和公认的模型底物,这些特征对于识别和有效切割活性很重要。